DocumentCode
1330221
Title
Evaluation of Magnetic Force Distribution and Torque Due to Smooth Interaction Body Force Density in Permanent-Magnet Materials
Author
Geun-Young Jeong ; Hong-Soon Choi ; Hong-Joon Kim ; Heung-Geun Kim ; Se-Hee Lee
Author_Institution
Dept. of Electr. Eng., Kyungpook Nat. Univ., Daegu, South Korea
Volume
47
Issue
10
fYear
2011
Firstpage
2819
Lastpage
2822
Abstract
A smooth interaction body force density and torque were evaluated in permanent-magnet (PM) systems by using the virtual air-gap scheme coupled with the finite-element method. The virtual air-gap method has been successfully applied to soft magnetic materials for evaluating the force density, global contact force, and optimal shape design. These force-calculating methods employing the virtual air-gap scheme have been called generalized methods. Unlike the soft magnetic materials, there have been few research works related to force density and global force in PMs. We evaluated the interaction body force density, which represents the smooth and pure interacting force field between PMs and other magnetic components, by withdrawing the self-body force density from the total body force density. From this result, the smooth interaction body force density can explicitly show the trend of resulting mechanical torque. The torque by the self-body force density, of course, was zero and the torque, here, was evaluated by using the total body force density. From the previous results, the torque by total body force density shows some numerical instability, and we used edge-force components in each element for removing the numerical instability. Finally, the global quantities, such as global force from the smooth interaction body force density and torque from the total body force density, were successfully evaluated and verified by the conventional force calculating methods, such as the Maxwell stress tensor method and the virtual work principle method.
Keywords
finite element analysis; permanent magnets; Maxwell stress tensor; finite-element method; generalized methods; global contact force; interaction body force density; magnetic force distribution; permanent-magnet materials; self-body force density; shape design; torque; total body force density; virtual air-gap scheme; virtual work principle method; Force; Magnetic analysis; Magnetomechanical effects; Rotors; Soft magnetic materials; Torque; Force density; interaction body force density; permanent magnet (PM); self-body force density; smooth body force; torque;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2011.2151276
Filename
6027751
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